The present application claims benefit of Chinese patent application CN 201410802582.5, entitled “A Liquid Crystal Panel and A Liquid Crystal Display Device Comprising the Same” and filed on Dec. 18, 2014, the entirety of which is incorporated herein by reference.
The present disclosure relates to the technical field of display, and in particular to a liquid crystal panel and a liquid crystal display device comprising the liquid crystal panel.
An aperture ratio of a pixel unit refers to a ratio of an area of an effective region of the pixel unit, through which light can pass, to the total area thereof. When light is emitted from the backlight, not all of it can pass through the liquid crystal panel. For example, light cannot completely penetrate the locations where components, such as signal wirings for driving chips, thin film transistors themselves, and storage capacitors for storing voltage, and the like, are arranged. In addition to the incomplete transmittance of the abovementioned locations, because light passing through these locations is out of the control of the voltage, it is difficult for a correct gray scale to be displayed. In this case, said locations should be covered with a black matrix, so that other light permeable region would not be disturbed. The aperture ratio is a ratio of the area of the effective light permeable region to the total area of the pixel unit.
However, in order to prevent moving mura, it is a conventional approach that the black matrix 1 is widened.
The value of M is determined by the degree of shift between the array substrate 5 and the color filter substrate 6, and generally in a range of 0 to 30 μm. The degree of shift is determined by the specific parameters of the panel. The larger the relative shift is, the lower the probability of occurrence. The value of M can be typically in a range of 0 to 20 μm. The larger the value of M is, the larger the extra coverage by the black matrix 1, and thus the more the loss of aperture ratio.
As shown in
In the pixel unit as shown in
Under ideal conditions, the gate line 3 and the light leaking regions around the gate line 3 will be blocked by the black matrix 1 arranged on the color filter substrate 6, and thus the display of black image will not be influenced.
However, in actual operation, relative shift between the color filter substrate 6 and the array substrate 5 of the liquid crystal panel would easily occur, thereby causing moving mura phenomenon. As shown in
As shown in
In order to solve the technical problem in the prior art of low utilization ratio of light due to large loss of aperture ratio caused by the design of the black matrix of the liquid crystal panel, an improved liquid crystal panel is proposed according to the present disclosure.
In embodiment 1 according to the present disclosure, a liquid crystal panel comprises a liquid crystal layer, and an array substrate and a color filter substrate respectively disposed on both sides of the liquid crystal layer, wherein a gate line is arranged at an end of each pixel unit in a first direction of the array substrate, and a black matrix corresponding to the gate line is arranged on a side of the color filter substrate facing the liquid crystal layer, and wherein two adjacent pixel units in the first direction are configured such that their gate lines are adjacent to each other or away from each other in opposite directions.
In a pixel designed in the prior art, because gate lines are arranged on both an upper side and a lower side of each aperture region, the loss of an area of the aperture region in each pixel unit equals to 2 M×W (W is a width of a pixel electrode at an extending region of the black matrix), rendering large loss of aperture ratio.
When the pixel units are arranged in a manner according to the present disclosure, an aperture region of each pixel is adjacent to only one gate line. In this case, under the condition that the black matrix is also widened for a distance M, the loss of an area of the aperture region in each pixel unit is only M×W, which is half of that under conventional design.
In embodiment 2 which is improved based on embodiment 1, in a column of pixel units along the first direction, a (2n−1)th pixel unit and a 2nth pixel unit are configured such that their gate lines are adjacent to each other, with 0<n≦(a total number of pixel units in the column)/2, n being a positive integer.
In embodiment 3 which is improved based on embodiment 1, in a column of pixel units along the first direction, a 2nth pixel unit and a (2n+1)th pixel unit are configured such that their gate lines are adjacent to each other, with 0<n≦[(a total number of pixel units in the column)/2½], n being a positive integer.
In embodiment 4 which is improved based on any one of embodiments 1 to 3, each black matrix is structured to cover two adjacent gate lines corresponding thereto.
In embodiment 5 which is improved based on any one of embodiments 1 to 4, both ends of the black matrix in the first direction each extend beyond an edge of each of pixel electrodes corresponding to said two pixel units for a distance.
The degree of shift between the array substrate and the color filter substrate is determined by the specific parameters of the panel, and generally in a range of 0 to 30 μm.
The larger the relative shift is, the lower the probability of occurrence. The distance of extension of the black matrix beyond the edge of the pixel electrode can be determined by the degree of relative shift between the array substrate and the color filter substrate.
In embodiment 6 which is improved based on embodiment 5, the distance is in a range of 0-30 μm.
In embodiment 7 which is improved based on embodiment 5 or embodiment 6, the distance is in a range of 0-20 μm.
In embodiment 8 which is improved based on any one of embodiments 1 to 7, in a second direction perpendicular to the first direction, pixel units in a same line are configured with a same orientation.
In embodiment 9 which is improved based on any one of embodiments 1 to 8, in the second direction perpendicular to the first direction, gate lines of the pixel units in the same line are aligned with one another.
A liquid crystal display device comprising the liquid crystal panel is further proposed according to the present disclosure.
In the liquid crystal panel and the display device according to the present disclosure, each two adjacent pixel units in the first direction constitute a group and are arranged in such a manner that their gate lines abut against each other. In other words, one of said two adjacent pixel units is placed “upside down”.
With such arrangements of the pixels, the aperture region of each pixel unit is adjacent to only one gate line. Thus, under the condition that the black matrix is also widened for a distance M, the loss of the area of the aperture region of each pixel unit is merely M×W, which is half of that under conventional design in the prior art.
The arrangements of pixel units are adjusted according to the present disclosure, such that gate lines of two adjacent pixel units in the first direction are disposed at the junction therebetween, thereby the loss of the area of the aperture region caused by the widened black matrix can be reduced by half Therefore, while moving mura is eliminated, the loss of aperture ratio can also be reduced according to the present disclosure.
As long as the objective of the present disclosure is met, the above technical features can be combined together in any suitable manner or replaced with equivalent technical features.
The present disclosure will be described in detail based on the non-limiting examples and the accompanying drawings. In the drawings:
In the drawings, same components are indicated with the same reference sign. The drawings are not drawn to actual scale.
The present disclosure will be described in detail with reference to the accompanying drawings.
As shown in
The liquid crystal panel comprises a liquid crystal layer, and an array substrate and a color filter substrate respectively disposed on both sides of the liquid crystal layer. A gate line is arranged at an end in a first direction of each pixel unit of the array substrate, and a black matrix corresponding to the gate line is arranged on a side of the color filter substrate facing the liquid crystal layer. The first direction is the direction indicated by axis y in the coordination system as shown in
As shown in
In a column of pixel units along the first direction, a (2n−1)th pixel unit and a 2nth pixel unit are configured such that their gate lines are adjacent to each other, with 0<n<(a total number of pixel units in the column)/2, n being a positive integer. In other words, when the total number of pixel units in a column in the first direction is even, each two pixel units form a group and are respectively arranged in opposite orientations. When the total number of pixel units in a column in the first direction is odd, each two pixel units of all pixel units except for the last one form a group and are respectively arranged in opposite orientations, and the last pixel unit can be arranged in any manner.
The pixel units can also be arranged in the following manner. In a column of pixel units along the first direction, a 2nth pixel unit and a (2n+1)th pixel unit are configured such that their gate lines are adjacent to each other, with 0<n≦[(a total number of pixel units in the column)/2½], n being a positive integer. That is, when the total number of pixel units in a column in the first direction is odd, the first pixel unit is arranged in an optional manner, and each two of the rest pixel units form a group and are respectively arranged in opposite orientations.
In a second direction perpendicular to the first direction, pixel units in a same line are configured with a same orientation. As shown in
In order to eliminate the defect of light leakage near the gate lines, each black matrix is configured to cover two adjacent gate lines corresponding thereto. In order to prevent light leakage caused by the relative shift between the color filter substrate and the array substrate, both ends of the black matrix in the first direction each extend beyond an edge of each of pixel electrodes corresponding to said two pixel units for a certain distance. The degree of relative shift between the array substrate and the color filter substrate is determined by the specific parameters of the panel. The distance can be selected in a range of 0-30 μm based on the average degree of relative shift between the array substrate and the color filter substrate. Preferably, the distance is in a range of 0-20 μm.
In addition, a liquid crystal display device comprising the liquid crystal panel is proposed according to the present disclosure.
In the prior art, the pixel units on the liquid crystal panel are repeatedly arranged, i.e., the gate line in each of the pixel units is arranged in the same manner.
As shown in
With such arrangements of the pixels, the aperture region of each pixel unit is adjacent to only one gate line. Thus, under the condition that the black matrix is also widened for a distance M, the loss of the area of the aperture region of each pixel unit is merely M×W, which is half of that under conventional design in the prior art.
According to the present disclosure, the arrangements of pixel units are adjusted such that gate lines for two adjacent pixel units in the first direction are disposed at the junction therebetween, thereby the loss of the area of the aperture region caused by the widened black matrix can be reduced by half Therefore, while moving mura is eliminated, the loss of aperture ratio can also be reduced according to the present disclosure.
Although the present disclosure has been described with reference to preferred embodiments, various modifications and variants to the present disclosure may be made by anyone skilled in the art, without departing from the scope and spirit of the present disclosure. The present disclosure is not limited to the specific examples disclosed herein, but rather includes all the technical solutions falling within the scope of the claims.
| Number | Date | Country | Kind |
|---|---|---|---|
| 201410802582.5 | Dec 2014 | CN | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/CN2015/071053 | 1/19/2015 | WO | 00 |